Tengfei Creation Center,55 Jiangjun Avenue, Jiangning District,Nanjing admin@sinochem-nanjing.com 3389378665@qq.com
Follow us:

2,4,6-Trinitrophenylmethylnitramine

    • Product Name 2,4,6-Trinitrophenylmethylnitramine
    • Alias Tetryl
    • Einecs 209-836-0
    • Mininmum Order 1 g
    • Factory Site Tengfei Creation Center,55 Jiangjun Avenue, Jiangning District,Nanjing
    • Price Inquiry admin@sinochem-nanjing.com
    • Manufacturer Sinochem Nanjing Corporation
    • CONTACT NOW
    VTB
    Specifications

    HS Code

    585983

    Chemical Name 2,4,6-Trinitrophenylmethylnitramine
    Molecular Formula C7H5N5O8
    Molar Mass 307.15 g/mol
    Appearance Yellow crystalline solid
    Melting Point 169-170°C
    Density 1.77 g/cm3
    Solubility In Water Insoluble
    Cas Number 479-45-8
    Explosive Sensitivity Sensitive to shock and friction
    Synonym Tetryl

    As an accredited 2,4,6-Trinitrophenylmethylnitramine factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Amber glass bottle containing 100 grams of 2,4,6-Trinitrophenylmethylnitramine, sealed with a plastic cap and hazard warning label.
    Shipping 2,4,6-Trinitrophenylmethylnitramine must be shipped as a dangerous good, following relevant regulations for explosives. It requires packaging in approved, tightly sealed containers, clearly labeled with hazard identification. Transport should only occur by certified carriers, with proper documentation, and all handlers must use explosion-proof precautions and personal protective equipment to ensure safe delivery.
    Storage **2,4,6-Trinitrophenylmethylnitramine** should be stored in a tightly sealed container in a cool, dry, and well-ventilated area, away from heat, flames, and direct sunlight. Keep separate from incompatible materials such as strong acids, bases, and reducing agents. Store in a designated area for explosives or highly reactive substances with appropriate safety signage and access limited to trained personnel.
    Application of 2,4,6-Trinitrophenylmethylnitramine

    Applications of 2,4,6-Trinitrophenylmethylnitramine in Industrial Manufacturing

    2,4,6-Trinitrophenylmethylnitramine serves as a specialized energetic chemical intermediate and component within key industrial manufacturing fields. The following sections outline primary application domains, covering regulatory adherence, composition ratios, production workflow points, and end-use articles manufactured by our clients.

    1. Military and Industrial Explosives Formulation

    This compound functions as a controlled ingredient in advanced explosive compositions, particularly within military and civil sectors requiring precision detonation and high brisance. Integrators handle this material under strict legal frameworks, employing it in custom charge formulations or castable explosive charges for specific munitions and engineering applications.

    Industry compliance standards

    • UN Recommendations on the Transport of Dangerous Goods – Explosives, Classification 1.1D
    • International Ammunition Technical Guidelines (IATG)
    • National Defense Authorization Acts compliance (relevant national military standards, e.g., MIL-STD-2105D for USA)
    • REACH Annex XVII (explosive precursors regulations in EU)

    Typical usage ratio

    • Generally 10–25% by mass in mixed plastic or castable explosives; ratio tailored based on required detonation properties, blast profile, and performance constraints.

    Downstream process integration

    • Added during batch mixing following initial binder pre-polymerization, prior to casting, molding, or extrusion processes for explosive assemblies.

    Final product types

    • Shaped charges for military ordnance
    • Demolition charges
    • Advanced detonator boosters
    • Explosive lenses for precision munitions

    2. Propellant Systems for Rocketry and Missile Technology

    As a high-energy nitroaminophenyl compound, this material sees use in select composite propellant blends for military and aerospace propulsion. Propellant manufacturers incorporate it to adjust energy output and improve combustion profiles of solid fuel grains where conventional ingredients lack requisite thermal stability or energetic yield.

    Industry compliance standards

    • U.S. DoD Explosives Safety Board (DDESB) standards
    • NATO Allied Ordnance Publication (AOP-7) for energetic materials
    • European ADR Class 1 transit requirements
    • ISO/IEC 17025 laboratory quality management for energetic material testing

    Typical usage ratio

    • Incorporation rates vary from 5–15% as a secondary energetic additive; precise level determined according to targeted impulse and thermal performance validated by small-scale propellant lots.

    Downstream process integration

    • Metered into oxidizer-slurry or binder-matrix during the initial high-shear mixing stage for composite propellant blocks or cast cure formulations.

    Final product types

    • Solid rocket boosters
    • Tactical missile propulsion modules
    • Space launch vehicle segments
    • Actuator charges for separation systems

    3. Primary Explosive Devices and Initiation Systems

    In the manufacture of primary explosive triggers, especially for specialty detonators and blasting caps, downstream partners use our material for its enhanced initiating sensitivity and rapid gas expansion rate. The physical properties enable reliable function in critical initiator circuits where pyrotechnic response time and reproducibility prove critical.

    Industry compliance standards

    • ATF Federal Explosives Regulations (27 CFR Part 555, USA)
    • EN 13763-1:2003 (European Standard for Detonators)
    • U.S. OSHA regulation 29 CFR 1910.109 (Explosives and Blasting Agents)
    • ISO 9001:2015 certified quality control for initiator production

    Typical usage ratio

    • Integrator usage of 2–8% within the primer mix component, adjusted to match energy transfer requirements and sensitivity levels of downstream initiation chain.

    Downstream process integration

    • Dispersed into metallic or inorganic salt matrices at pre-wet mixing phase, followed by precision pelletization and encasement during final device assembly.

    Final product types

    • Electric blasting caps
    • Non-electric detonators
    • Squib devices for safety systems
    • Bridge wire ignition modules

    4. Mining and Quarrying Explosive Products

    Large-scale mining and civil blasting operations leverage this specialty ingredient for emulsion explosives and high-performance bulk charge formulations. Value-add production lines exploit its stability and detonation reliability to increase safety margins and improve blast fragmentation consistency in variable geological conditions.

    Industry compliance standards

    • MSHA (Mine Safety and Health Administration) Explosives Safety Standards (USA)
    • Directive 2014/28/EU (EU Explosives for Civil Uses Directive)
    • Australian AS 2187: Explosives – Storage, Transport and Use
    • IMDG Code – International Maritime Dangerous Goods Code for shipping

    Typical usage ratio

    • Use levels typically range from 3–10% by formulation mass, custom-set based on energy output needed for specific ore or rock types, confirmed by field test blasts.

    Downstream process integration

    • Incorporated into bulk emulsion or water-gel blends in automated batch plants pre-pump loading for on-site delivery and borehole application.

    Final product types

    • Bulk emulsified explosives
    • Pre-packed cartridged safety explosives
    • Specialty mining charge blends
    • Controlled blasting fragmenting devices
    Free Quote

    Competitive 2,4,6-Trinitrophenylmethylnitramine prices that fit your budget—flexible terms and customized quotes for every order.

    For samples, pricing, or more information, please call us at +8615371019725 or mail to admin@sinochem-nanjing.com.

    We will respond to you as soon as possible.

    Tel: +8615371019725

    Email: admin@sinochem-nanjing.com

    Get Free Quote of Sinochem Nanjing Corporation

    Flexible payment, competitive price, premium service - Inquire now!

    Certification & Compliance
    More Introduction

    Get to Know 2,4,6-Trinitrophenylmethylnitramine: Manufacturer's Perspective

    Shining a Light on a Precision-Engineered Specialty Compound

    In the world of chemicals, few products demand more precision or carry more responsibility than energetic materials. Our experience manufacturing 2,4,6-Trinitrophenylmethylnitramine boils down to a continuous focus on quality, consistent output, and strict reliability. This compound—sometimes described in expert circles as a powerful nitroaromatic-nitramine hybrid—serves as a fine example of what disciplined chemistry and decades of process refinement can achieve.

    What is 2,4,6-Trinitrophenylmethylnitramine?

    Unlike more common energetic substances, 2,4,6-Trinitrophenylmethylnitramine stands aside not for ubiquity but for niche applications that reward stable, finely calibrated performance with proven repetitive safety. The molecular backbone unites a trinitrophenyl group with a methylnitramine substituent, conferring its signature reactivity. More than any textbook formula, our daily work in the plant confirms that reproducibility and proper control mean everything for this molecule. Modest changes in input quality, mixing speed, crystallization temperature, or pH swing reaction outcomes far more than many realize.

    Our Day-to-Day Experience: Real Precision Production

    Our shop floors run with people and instruments tuned for the specifics of products like 2,4,6-Trinitrophenylmethylnitramine. We start with high-purity starting reagents, ground and measured by skilled operators who have handled these components for years—they understand the risks and the signs of material inconsistency. An example: an operator flagged an unusual batch color last autumn, leading to a review that discovered a minute contaminant in a nitrate input, invisible to most testing methods. This catch averted a potentially nonconforming lot and likely prevented downstream issues for our partners.

    Nitration reactions form the backbone of this chemical’s creation. Safe operation calls for triple-redundant pressure relief, jacketed glass reactors, vent scrubbers, and monitoring down to tenth-of-a-degree temperature control. Laboratory samples leave the line hourly. We use double verification by both human analyst and chromatograph. The process rarely forgives errors. Growth conditions for crystals, agitation speed, and moisture at packaging—all demand a practiced hand.

    Specifications: What We Deliver to Clients

    We consistently provide the product as a free-flowing, off-white to light yellow crystalline powder. Moisture control remains continuous through production and handling—exposing this compound to excess humidity impacts not just flow properties, but also chemical stability over storage. Our typical batches show purity exceeding 99% by HPLC and FTIR analyses, with trace metalloid and chloride content well below detection for electronic initiator applications.

    Particle size affects handling safety and downstream application success. We use both air mill micronization and low-shear granulation, depending on customer end-use in detonator or explosive compositions. This is not interchangeable with other forms. Electrical sensitivity falls within validated expectations, and thermal stability has been measured in our in-house calorimetry chambers over hundreds of lots. In storage, packaging uses antistatic and moisture barrier materials for long-term integrity—this reduces incidents of auto-degradation or accidental charge buildup.

    Key Differences: How This Compound Distinguishes Itself

    Start with structure. A simple substitution can spell the difference between a safe, reliable detonating agent and a shelf-sensitive, hard-to-handle product. Some other commonly referenced nitroaromatic and nitramine compounds, like Tetryl or RDX, deliver distinct sensitivity and performance profiles. Trinitrophenylmethylnitramine sits between those, providing a unique balance. Unlike pure nitramines, the phenyl ring here grants extra stability—longer shelf life under normal humidity, less sensitivity to mechanical friction, but retained performance in small charge initiation systems.

    Industry veterans know the difference as soon as the drums are opened. Odor is faint yet distinct—no acrid whiff you’d find with poorly manufactured batches of Tetryl. This attribute reflects careful pH washing during workup and multiple recrystallization passes. Impurities introduce more than just performance variability; in energetic chemistry, they trigger unwanted side reactions, gas generation, and storage breakdown. Our control over each process variable reduces these outcomes, helping our clients avoid costly stoppages or regulatory flags.

    Downstream Use: How Manufacturers, Engineers, and Researchers Apply It

    Initiator manufacturers come to us for precise specifications. The reliable firing threshold and modest static sensitivity added to high detonation velocity offer safe yet highly effective priming for detonator assemblies—especially in advanced industrial blasting systems. Research teams working on novel micro-detonators or analytical standardization rely on consistent impurity profiles across lots, given even one-tenth percent deviation sometimes throws off entire runs.

    Whereas old-line Tetryl grades can fail under variable moisture and storage, our Trinitrophenylmethylnitramine maintains its characteristics for years in proper sealed storage. Defense and space contractors request smaller lots with particle ranges tailored to device constraints, with confidence that three-year stability tests in pressurized aging chambers have been run before material ships. Energy output also compares favorably for applications needing measured push but without over-sensitizing to heat or friction. Our technical teams routinely consult with clients on adapting their fill process or press loading sequence to minimize unused residues and maximize yield.

    Safety Insights from Long-Term Handling

    Every plant has stories of handling energetic compounds. Routine weighs down complacency, yet the risk profile for 2,4,6-Trinitrophenylmethylnitramine focuses attention. Our training emphasizes material status at every stage. Experience shows that even a half-degree deviation in drying can create pockets of sensitive fines. ATEX-compliant zones, antistatic floors, and remote material handling carts shield both staff and product from unwanted incidents. Regular peer review of records keeps eyes sharp. This vigilance translates to fewer near-misses—a measurable improvement over processes run without these habits.

    Packaging design factors in every risk. We use layered containment and rigid security customs during transit. Working with regulatory agencies and customer auditors, feedback flows back into process improvements, particularly after international shipments return storage results from equatorial climates. Lessons from a summer shipment to Southeast Asia led to redesigned barrier liners, further reducing humidity-induced clumping noticed in earlier years. Each lesson learned becomes part of our implemented standards, shared directly with repeat customers.

    Why This Compound Remains in Demand

    Clients keep coming back for more than just the chemical. They trust the name behind it, the real-world records, and the lack of surprises. Demand persists because alternatives still fall short in key areas. Lifespan, ignition control, toxicity profiles, and handling behavior matter not just for safe operation but for integration into highly regulated end-products. The better the starting material, the lower the total system risk—be it storage hazard, process stoppage, or final-use mishap.

    For some, the initial purchase price can appear higher than generic grades or unspecified international lots. Experience quickly teaches the hidden costs of inconsistency. Over the years, we have seen many firms save large sums by investing in upfront guarantee of purity, lifecycle support, and rapid issue troubleshooting. Field engineers know hassle-free batch processing, not repeated troubleshooting, builds trust and reliable output.

    Notes from the Field: Partners Share Their Stories

    Certain long-term partners manufacture precision detonators for automated mining operations. One told us an earlier supplier’s material led to increased fail-to-fire rates, which shut down a critical ore line and cost their operation several days’ production. On switching to our trinitrophenylmethylnitramine, their quality-control tracking over six months showed a near elimination of firing inconsistencies, with traceable batch tracking feeding directly into their QA system. They now rely on scheduled deliveries with built-in batch reports, trusting each stage has been validated in our own facility before product leaves our site.

    Researchers at a defense laboratory also rely on our support. They work on formulations that require minute compositional tweaks, and our access to analytical data has helped them design pilot-scale experiments while minimizing hazardous waste disposal at each turn. These stories drive home a principle: specialty energetic materials require not just technical expertise in synthesis, but also in logistics, application support, and ongoing relationship.

    Improvement and Commitment: The Manufacturer’s Approach

    No batch goes out the door without every lab and plant operator knowing their name goes on the tracking record. This hands-on approach means repeat audits are welcome, not feared. Listening matters. Years ago, our field technical team discovered a shipping shortfall after a customer reported minor caking on arrival. Since then, we’ve added data loggers to international consignments, tracking ambient temperature and humidity, with data shared back to us before payment—reassurances that bolster trust.

    Investments flow into safer reactor design and modern particle sizing. We meet customer requests for smaller batch runs with specialized sieving, offer additional purity checks, and update process risk assessments every two quarters. Our plant sees regular investment based on global feedback—whether it be better closed-system transfer lines or new trace-metals analysis protocols before final packaging.

    Many challenges in this field stem from evolving regulation, raw material volatility, and greater health sensitivities. Our response has always favored direct communication: open plant tours for qualified client staff, laboratory tours under NDA, and regular rounds with lead customers to talk future needs and challenges. They teach us as much as we help them.

    Regulatory Awareness and Responsible Practice

    Energetic compounds draw close focus from oversight bodies. Active compliance forms part of daily operations, but responsible stewardship goes further. Our plant processes always exceed minimum local and international guidelines. All formulations, raw material sources, and downstream user profiles are reviewed internally for risk assessment. In cooperation with third-party audit partners, we treat environmental monitoring and responsible disposal with the same seriousness as product purity.

    Tracing every drum from raw reagent to finished lot links back to our focus on safety. Any deviation from norm triggers action—sometimes a full lot recall, sometimes a corrective tweak documented for all staff. Maintaining full regulatory documentation at every step not only builds customer trust, but spares no room for shortcuts.

    Looking Forward: What Users and Partners Can Expect

    Change comes steadily but surely in this business. With wider demand from advanced micro-detonator developers, unmanned robotics mining, and next-generation environmental sensors, 2,4,6-Trinitrophenylmethylnitramine continues to evolve. We listen to those at the cutting edge. Partners are increasingly interested in smaller lots, more focused particle size bands, or new analytical support data. We expand our solvent recovery and emission controls in tandem, minimizing our footprint as standards go up.

    Research partnerships seek not only batch consistency, but also support with safe disposal and tailored batch marking. We dedicate staff hours each month to supporting R&D teams as new applications take shape. Working in this space means learning each day—adapting not just to material science advances, but to supply chain and social concerns unfolding across markets.

    Those who invest in building direct relationships with their manufacturers—the real sources, not intermediaries—quickly see the returns in supply security, technical collaboration, and honest feedback. We find satisfaction in each application advanced, each risk managed, and every welcome repeat order based on performance rather than marketing.

    Closing Thoughts: Trust Through Experience

    Responsible chemical manufacture never ends at the assembly line. It grows through time, through dialogue, through problem-solving alongside the very people who use what we make. 2,4,6-Trinitrophenylmethylnitramine, as we know it, reflects that history—precision not for its own sake, but for safety, reliability, and the kind of trust that’s earned over years, batch by batch. From raw materials to field deployment, our hand in every step means our customers always know what they are getting: real expertise, standing behind each shipment.